白菜“香青菜”基因组的高质量测序及挥发性香气相关基因的进化探索。

IF 7.6 Q1 GENETICS & HEREDITY 园艺研究(英文) Pub Date : 2023-09-15 eCollection Date: 2023-10-01 DOI:10.1093/hr/uhad187
Zhaokun Liu, Yanhong Fu, Huan Wang, Yanping Zhang, Jianjun Han, Yingying Wang, Shaoqin Shen, Chunjin Li, Mingmin Jiang, Xuemei Yang, Xiaoming Song
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引用次数: 0

摘要

“香草”(XQC,芸苔品种chinensis)是芸苔科中的一种重要蔬菜作物,因其具有强烈的挥发性香味而得名。在本研究中,我们报道了XQC的高质量染色体水平的基因组序列。组装后的基因组长度为466.11 Mb,N50支架为46.20 Mb。XQC基因组中共检测到59.50%的重复序列,包括47 570个基因。在所有Brassicaceae物种中,XQC与B.rapa QGC(“青更菜”)和B.rapa Pakchoi的亲缘关系最为密切。除了一个古老的WGT事件外,XQC基因组中还发生了两次全基因组复制(WGD)事件和一次最近的全基因组三倍化(WGT)事件。观察到最近的WGT发生在21.59-24.40 Mya期间(经过进化率校正后)。我们的研究结果表明,在XQC的基因组进化过程中,XQC经历了基因丢失和染色体重排。综合基因组和转录组分析的结果揭示了参与萜类生物合成途径的关键基因和萜合酶(TPS)家族基因。总之,我们确定了B.rapa XQC的染色体水平基因组,并鉴定了参与挥发性香料合成的关键候选基因。这项工作可以为未来雷帕霉素的比较和功能基因组分析以及分子育种奠定基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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The high-quality sequencing of the Brassica rapa 'XiangQingCai' genome and exploration of genome evolution and genes related to volatile aroma.

'Vanilla' (XQC, brassica variety chinensis) is an important vegetable crop in the Brassica family, named for its strong volatile fragrance. In this study, we report the high-quality chromosome-level genome sequence of XQC. The assembled genome length was determined as 466.11 Mb, with an N50 scaffold of 46.20 Mb. A total of 59.50% repetitive sequences were detected in the XQC genome, including 47 570 genes. Among all examined Brassicaceae species, XQC had the closest relationship with B. rapa QGC ('QingGengCai') and B. rapa Pakchoi. Two whole-genome duplication (WGD) events and one recent whole-genome triplication (WGT) event occurred in the XQC genome in addition to an ancient WGT event. The recent WGT was observed to occur during 21.59-24.40 Mya (after evolution rate corrections). Our findings indicate that XQC experienced gene losses and chromosome rearrangements during the genome evolution of XQC. The results of the integrated genomic and transcriptomic analyses revealed critical genes involved in the terpenoid biosynthesis pathway and terpene synthase (TPS) family genes. In summary, we determined a chromosome-level genome of B. rapa XQC and identified the key candidate genes involved in volatile fragrance synthesis. This work can act as a basis for the comparative and functional genomic analysis and molecular breeding of B. rapa in the future.

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